Senior Member of Technical Staff: Reinforcement Learning for Wholebody Control
Cambridge, Massachusetts, United States · On-site
$180k–$240k/yr
Senior
Position Summary: You will develop the learned control policies that give our humanoid robots robust, capable whole-body motion—and get them running on real hardware in real deployments. This role sits at the intersectio…
Skills: Reinforcement learning, Whole-body control, Python, C++, Sim-to-real transfer
Senior Member of Technical Staff: Realtime Networking
Cambridge, Massachusetts, United States · On-site
$180k–$240k/yr
Senior
Position Summary: You will own the networking that our robots depend on—most critically the low-latency wireless link that carries teleoperation between operator and robot, and more broadly the on-robot, building-wide, a…
Senior Member of Technical Staff: Fullstack Web Development
Cambridge, Massachusetts, United States · On-site
$180k–$240k/yr
Senior
Position Summary: You will build the web applications through which people understand and operate our robots—the dashboards, monitoring tools, and customer-facing interfaces that turn a fleet of robots and a firehose of …
Skills: Fullstack web development, JavaScript, TypeScript, Frontend development, Backend development
Position Summary: We're looking for a Senior IT Support Engineer to be the face of IT for our growing team in Cambridge and the senior owner of the end-user technology domain. Reporting to the Head of IT & Infrastructure…
Skills: IT support, Project management, Linux, MacOS, Windows
Position Summary: You will build and run the infrastructure that gets our software from a developer's laptop onto robots in the field—and keeps it running. Spanning build systems, CI/CD, cloud infrastructure, and robot d…
Senior Member of Technical Staff: Electrical Engineering — Compute and Sensing
Cambridge, Massachusetts, United States · On-site
$213k–$284k/yr
Senior
Position Summary: We are seeking a Senior Electrical Engineer to design the compute and sensing electronics at the core of our robot's perception stack. In this role, you will own the design of high-performance compute b…
Member of Technical Staff: Hardware Reliability and Test
Cambridge, Massachusetts, United States · On-site
$213k–$284k/yr
Senior+
Position Summary: We’re seeking a Reliability & Test Engineer to define and drive the reliability strategy for our robots from early design through production and field deployment. This role is ideal for a senior hands-o…
Skills: Robotics, Reliability engineering, Test engineering, Hardware validation, Electromechanical systems
Senior Member of Technical Staff: Multimodal Pre-Training
San Francisco, California, United States · On-site
$319k–$425k/yr
Senior
Position Summary: You'll be a senior technical leader for the pre-training of the omni-models at the core of our stack—single models trained across a wide range of objectives and modalities (LLM, VLM, video, and action) …
Senior Member of Technical Staff: Multimodal Post-Training
San Francisco, California, United States · On-site
$319k–$425k/yr
Senior
Position Summary: You'll be a senior technical leader for how our foundation models become capable, aligned robot policies. Working alongside our AI leadership and world-class team, you'll drive key work across SFT, pref…
Skills: Post-training, Large multimodal models, SFT, RLHF, DPO
Senior Member of Technical Staff: Manufacturing Engineering
Cambridge, Massachusetts, United States · On-site
$202k–$270k/yr
Senior+
Position Summary: We're seeking a Senior Manufacturing Engineer to own how our robot is manufactured and scaled — from prototype through volume production. In this role, you will define the manufacturing and DFx strategy…
Skills: Manufacturing engineering, Process engineering, DFx, DFM, DFA
Senior Member of Technical Staff: Reinforcement Learning for Policy Post-Training
San Francisco, California, United States · On-site
$255k–$340k/yr
Senior
Position Summary: You'll advance reinforcement learning for manipulation alongside a world-class team—using RL to push our robot policies on contact-rich, dexterous tasks beyond what imitation and supervised methods reac…
Member of Technical Staff: Data Infrastructure & Data Operations
San Francisco, California, United States · On-site
$255k–$340k/yr
Senior
Position Summary: You'll build and scale the data foundation alongside the world-class team training our robot models—the systems that move our multimodal data (robot sensor and action logs, plus web-scale image, video, …
Skills: Data infrastructure, Distributed systems, Data pipelines, Cloud-based infrastructure, Platform reliability
Position Summary: We're hiring an Inventory & Procurement Specialist to own the parts, procurement, and inventory operations that keep our humanoid robot builds moving. In this role, you will keep bills of materials (BOM…
San Francisco, California, United States · On-site
$255k–$340k/yr
Senior
Position Summary: You will build the data curriculum—what data our models learn from, in what mix, and in what order—across pre-training and post-training. This is a senior IC role at the heart of model quality, sitting …
Skills: Data-centric ML, Experimental design, Model quality, Data sourcing, Data mixing
Member of Technical Staff: Firmware, Embedded, and Functional Safety
Cambridge, Massachusetts, United States · On-site
$146k–$194k/yr
Mid level
Position Summary: We are seeking an Embedded Software Engineer to develop the low-level software that powers our robotic systems. In this role, you will design, implement, debug, and optimize real-time embedded software …
Senior Member of Technical Staff: Data & Training Infrastructure
San Francisco, California, United States · On-site
$255k–$340k/yr
Senior
Position Summary: You'll build and scale the infrastructure where data meets training—the systems that feed data efficiently into large-scale training and keep those runs fast, stable, and reproducible. As a senior IC yo…
Skills: Distributed training, ML infrastructure, Data loading, Caching, Training reliability
Position Summary: We're seeking a Build Technical Project Manager to own the planning and cross-functional execution of our humanoid robot builds. In this role, you will own the build program schedule, coordinate across …
Member of Technical Staff: Policy Evaluation & Experiment Infrastructure
San Francisco, California, United States · On-site
$152k–$203k/yr
Mid level
Position Summary: You will build the tooling that lets the autonomy team measure whether our robot policies are actually getting better—in simulation and on real hardware. This is a high-leverage engineering role at the …
Skills: Robot policies, Robotic systems, ML systems, Python, Cloud infrastructure
Job Description Summary The Biologics Research Center (BRC) at Novartis BioMedical Research is looking for a motivated and highly experienced leader in field of Physical Chemistry Analytics (PCA) and Mass Spectrometry (M…
Skills: Physical Chemistry Analytics, Mass Spectrometry, People Management, Recombinant Protein Analysis, Chromatography
Senior Architect, Data Warehouse & Database Administrator (Relocation Assistance Available!)
Cambridge, Massachusetts, United States · On-site
$130k–$150k/yr
Senior$10M raised
Classification: Exempt Job Family: Operations Reports to: Manager, Enterprise Systems Job Description Summary: OVERALL RESPONSIBILITIES Provide specialized technical expertise in data warehouse architecture, schema manag…
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$180k–$240k/yr
Full-time
Salary, Annual cash bonus, Company equity, Company-subsidized insurance programs, 401(k) with company match, Flexible PTO
Posted 59d ago
~40 hrs/week
Responsibilities
You will design, train, and tune reinforcement learning policies for whole-body control on humanoid platforms. You are also responsible for managing the sim-to-real pipeline to ensure dependable behavior on physical hardware.
Requirements
Candidates must have proven experience in reinforcement learning for continuous control and successful sim-to-real deployment on physical robots. Strong proficiency in Python, C++, and control theory is required, along with experience in large-scale simulation.
Full job description
Position Summary:
You will develop the learned control policies that give our humanoid robots robust, capable whole-body motion—and get them running on real hardware in real deployments. This role sits at the intersection of reinforcement learning and classical control: you'll train policies in large-scale simulation, blend them with model-based control where that's the right tool, and own the sim-to-real pipeline that turns a promising policy into dependable behavior on a physical robot. This is not a research-only role. Your success is measured by robots that stand, balance, and manipulate reliably in the field, and by a training-and-deployment pipeline that lets the team ship improved policies again and again.
Core Responsibilities:
Policy Development: Design, train, and tune reinforcement learning policies for whole-body control—balance, locomotion, and coordinated manipulation—on a humanoid platform.
RL + Control Integration: Combine learned policies with classical and model-based control techniques, choosing the right blend for robustness, safety, and performance. Interface the control stack smoothly with high-level motion commands.
Sim-to-Real Transfer: Own the pipeline that transfers policies from simulation to hardware—domain randomization, system identification, and the iterative loop of closing the sim-to-real gap on real robots.
Production Training Pipeline: Build and maintain the infrastructure to train, evaluate, version, and deploy policies repeatably, so improvements reach the fleet reliably and safely.
Real-Robot Deployment: Bring policies up on physical robots, debug behavior in the real world, and harden them against the variability of real environments.
Evaluation & Safety: Develop rigorous evaluation—in sim and on hardware—and ensure learned controllers behave safely and degrade gracefully at their limits.
Cross-Functional Collaboration: Partner with controls, hardware, simulation, and AI engineers to define interfaces, improve models, and integrate policies into the broader robot stack.
Required Qualifications:
Reinforcement Learning Depth: Proven experience developing and training RL policies for continuous control, with strong command of modern RL algorithms and their practical failure modes.
Real-Robot Sim-to-Real: Demonstrated success transferring learned policies from simulation to physical robots and deploying them on real hardware.
Control Fundamentals: Solid grounding in control theory and robot dynamics, and the judgment to combine learned and model-based approaches.
Large-Scale Simulation: Hands-on experience training policies in GPU-accelerated simulation at scale.
Software Engineering: Strong Python and working C++ skills, with the ability to build training and deployment infrastructure that others can rely on.
Humanoid or Legged Systems: Experience with whole-body control, locomotion, or manipulation on legged, humanoid, or similarly high-DOF robots.
Ownership: Track record of taking policies from concept through training, transfer, and field deployment.
Preferred Qualifications:
Experience with model predictive control, whole-body QP controllers, or trajectory optimization.
Background in system identification, actuator modeling, or contact-rich dynamics.
Experience building ML training infrastructure and experiment-tracking workflows at scale.
Familiarity with imitation learning, teleoperation data, or learning from demonstration.
Publications or demonstrated results in legged locomotion or whole-body control.
Walden Robotics offers a competitive total compensation program, including salary, annual cash bonus, company equity, company-subsidized insurance programs, 401(k) with company match, flexible PTO, daily lunch, and other benefits. The pay ranges noted on our posts are for salary only.
Walden Robotics is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to age, ancestry, color, family or medical care leave, gender identity or expression, genetic information, marital status, medical condition, national origin, physical or mental disability, political affiliation, protected veteran status, race, religion, sex (including pregnancy), sexual orientation, or any other characteristic protected by applicable laws, regulations, and ordinances. If you need assistance and/or a reasonable accommodation due to a disability during the application or the recruiting process, please send a request to [email protected].
Walden Robotics participates in E-Verify. If you receive an offer of employment from Walden, you will need to go through the E-Verify process of digital verification of your employment authorization documents as provided on the Form I-9. Participation in E-Verify does not limit your right to work and verification will only be completed after you become an employee with Walden Robotics.
We're a full-stack Physical AI company building and deploying general-purpose robots that put human ingenuity to work at industrial scale. Our robots continuously learn and improve while performing real work, today. And we are working toward a future where AI and robotics expand human potential and improve quality of life for everyone.
Founded in 2026 by pioneers in robotics and AI from Toyota Research Institute, MIT, Stanford, and Amazon, Walden combines Large Behavior Models with real-world operation and its own expert teams to bring capable robots to industry today.
How much do Engineering jobs in Cambridge, MA pay?
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